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Published on: June 25, 2018
The temperature dependence of gradient system response characteristics.
Manuel Stich1,2,3, Christiane Pfaff1,2, Tobias Wech1
1Department of Diagnostic and Interventional Radiology, University Hospital Würzburg, Würzburg, Germany.
Gradient coil temperature significantly impacts the gradient system transfer function (GSTF) in 3T MRI scanners. Linear and convolution models effectively capture these temperature-dependent variations for improved imaging accuracy.
Area of Science:
- Magnetic Resonance Imaging (MRI)
- Medical Physics
- Engineering
Background:
- The gradient system transfer function (GSTF) is crucial for characterizing dynamic gradient system behavior.
- Accurate GSTF is essential for correcting non-Cartesian k-space trajectories in MRI.
- Understanding temperature effects on GSTF is vital for maintaining image quality and scanner performance.
Purpose of the Study:
- To analyze the impact of gradient coil temperature on the GSTF of a 3T MRI scanner.
- To investigate the temperature dependency of GSTF self- and B0-cross-terms.
- To evaluate different modeling approaches for temperature-induced GSTF variations.
Main Methods:
- Acquired GSTF self- and B0-cross-terms using a phantom-based measurement technique on a 3T Siemens scanner.
- Measured GSTF terms across various temperature states up to 45°C.
- Utilized 12 integrated temperature sensors for continuous gradient coil temperature monitoring and compared different modeling strategies.
Main Results:
- GSTF self-terms exhibit a linear dependence on temperature, while B0-cross-terms do not show significant thermal variation.
- Thermal variations have negligible effects on the phase response.
- A linear model incorporating three key gradient coil sensors best represented self-terms; a convolution model was suitable for B0-cross-terms.
Conclusions:
- Temperature dependency of GSTF was successfully analyzed for a 3T Siemens scanner.
- Both self- and B0-cross-terms of GSTF can be effectively modeled using linear and convolution approaches, respectively.
- The proposed modeling relies on three main temperature sensor elements for accurate characterization.
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